TECHNICAL FIELD
[0001] The present invention relates to an antenna arrangement for use in a wireless communication
system. The arrangement comprises at least two single-polarized antenna functions,
which are adapted for radiating an antenna radiation lobe pattern having a horizontal
extension in an azimuth plane, and a vertical extension in an elevation plane, perpendicular
to the azimuth plane. The antenna functions both have essentially a first polarization
in a first direction.
[0002] The present invention also relates to a node in a wireless communication system,
the node comprising an antenna arrangement according to the above.
BACKGROUND
[0003] In cellular systems for wireless communication, base stations of different kinds
are normally used. A typical base station (BS) in a cellular system is often deployed
above roof-top level or in a high mast, increasing its coverage area. This gives a
high likelihood for line-of-sight between base stations, which can lead to significant
BS-to-BS station interference, in particular when a relatively high transmission power
is used.
[0004] EP 1 227 539 A1 discloses an antenna array comprising at least two groups of antennas where each
group comprises at least two pairs of antennas, each of the pairs in a group containing
orthogonally polarised antennas.
[0005] In a Time Division Duplex (TDD) system, uplink data traffic (to a BS) and downlink
data traffic (from a BS) use the same frequency carrier, but are separated in time.
During a first time period, the downlink data traffic is active, and during a second
time period the uplink data traffic is active, the downlink data traffic and uplink
data traffic not being active at the same time.
[0006] This may cause problem if two cells have different periods where uplink data traffic
and downlink data traffic are active, which results in a period of overlap, where
uplink data traffic and downlink data traffic are active at the same time, resulting
in interference.
[0007] In a TDD system, the BS-to-BS and MS-to-MS station interference within the system
can be severe since transmission and reception are done on the same frequency. Even
if the two cells are located in adjacent carrier frequencies, the interference could
be significant.
[0008] The interference situation is improved if all base stations synchronize their transmission
and reception time windows. Due to propagation delay, guard periods, or silent periods,
are needed to allow the transmissions from far away base stations to decay to an acceptable
level. Time synchronized interference to neighboring carriers can be suppressed similarly.
For the case with two unsynchronized TDD systems transmitting on adjacent frequency
bands, the interference in uplink slots from base stations transmitting in downlink
on the neighboring carrier can be very strong.
[0009] Due to propagation delay over the air, the interference from neighbouring base stations
transmitting on the same carrier will be high directly after the switch from DL transmission
to UL reception.
[0010] In a Frequency Division Duplex (FDD) system, the uplink and downlink activities use
different frequencies for their carriers, and thus the BS-BS, and MS-MS, interference
is typically highly suppressed by the use of duplex filters and large separation between
the uplink and downlink bands.
[0011] However, in some cases FDD systems are deployed at frequencies such that the downlink
of one FDD system is close to the uplink of the other, e.g. use of both 800 MHz and
900 MHz frequency plans.
[0012] Furthermore, in relevant sharing scenarios, FDD and TDD systems may be required to
coexist at frequency separations which are much less separated than the typical FDD
duplex distance. Additional guard bands and conformance to tight spectrum masks may
be required for minimizing interference between the two systems.
[0013] BS-to-BS interference can also be reduced by increasing the separation between base
stations or by avoiding line-of-sight situations. However, this severely limits the
operator choice of deployment alternatives and site locations.
[0014] There are a number of drawbacks with the existing solutions to the interference problems
discussed:
- Guard bands and guard periods represent unused resources and lead to lower spectrum
efficiency.
- Sharpening the filter requirements only work when the interferer and the victim of
the interference are located on different carriers, and even then the filters present
physical entities with certain costs and limitations
- Increased physical separation is often not a practical solution and severely limits
the operators site location choices. If the second system is deployed after the first
system, the first systems locations are already in place and choices are limited.
- Synchronization in TDD may be difficult or even impossible if there are two different
technology TDD systems (e.g WiMax and LTE/TDD) deployed on neighboring frequency bands.
- Synchronization between uplink and downlink usage is in general not possible in a
sharing situation between a TDD and a FDD system, e.g. WiMax or LTE/TDD on the one
hand and LTE/FDD or WCDMA (Wideband Code Division Multiple Access) or WCDMA HSPA (High
Speed Packet Access) on the other hand.
[0015] MIMO (Multiple Input Multiple Output) is an emerging concept that will be used for
example in LTE (Long Term Evolution). The MIMO concept makes use of two or more transmitting
antennas and two or more receiving antennas to enable simultaneous communication of
multiple data streams. The antenna functions or positions need to differ in order
to give sufficiently de-correlated channels such that the data streams can be made
separable. One possibility is to use different polarizations to communicate different
data streams, using one polarization for each data stream. Polarized transmission
of MIMO streams is therefore an attractive antenna solution for MIMO.
[0016] There clearly exists a need to obtain an arrangement that provides reduced interference
between base stations, which arrangement does not have the drawbacks discussed above,
and where communication between a base station and a user terminal, such as a mobile
phone, using MIMO, is made possible.
SUMMARY
[0017] It is an object of the present invention to reduce interference between base stations,
while making communication between a base station and a user terminal, such as a mobile
phone, possible using MIMO without the drawbacks discussed above.
[0018] This object is solved by means of an antenna arrangement for use in a wireless communication
system. The arrangement comprises at least two single-polarized antenna functions,
which are adapted for radiating an antenna radiation lobe pattern having a horizontal
extension in an azimuth plane, and a vertical extension in an elevation plane, perpendicular
to the azimuth plane. The antenna functions both have essentially a first polarization
in a first direction. According to the present invention, in a second direction separated
from the first direction, the second antenna function has a second polarization and
the first antenna function has a third polarization. The second polarization and the
third polarization are essentially orthogonal to each other.
[0019] The object is also solved by means of a node in a wireless communication system,
the node comprising an antenna arrangement according to the above.
[0020] According to an embodiment example, the third polarization is essentially equal to
the first polarization.
[0021] According to another embodiment example, the second direction is separated from the
first direction at least in an elevation plane.
[0022] According to another embodiment example, the vertical components and horizontal polarization
components of the first polarization have essentially equal amplitude.
[0023] According to another embodiment example, the second direction is intended for communication
with a user terminal.
[0024] According to another embodiment example, the communication in the second direction
comprises communication by means of Multiple Input Multiple Output, MIMO.
[0025] According to another embodiment example, the wireless communication system further
comprises at least one further base station having corresponding antenna functions.
The base stations in the wireless communication system are arranged for communication
such that all the antenna functions use essentially identical polarizations, such
that each one of two opposite antenna functions comprised in separate base stations
experience an essentially orthogonal polarization from the other in the first direction.
The first direction is essentially the direction from antenna functions comprised
in one one station, towards opposite antenna functions comprised in other base stations.
[0026] According to another embodiment example, an antenna function has a first polarization
and a second polarization and is continuously variable, from the first polarization
to the second polarization, between the first direction and the second direction.
[0027] According to another embodiment example, each antenna function with a continuously
variable polarization comprises a first element with a first polarization vector and
a second element with a second polarization vector. The polarization vectors present
an angle between them, where the elements radiate essentially equal radiation patterns,
the elements being separated by a distance.
[0028] According to another embodiment example, each antenna function with a continuously
variable polarization comprises a first element with a first polarization vector and
a second element with a second polarization vector. The polarization vectors present
an angle between them, where the elements radiate unequal radiation patterns.
[0029] A number of advantages are obtained by means of the present invention. For example:
- Interference between receivers is significantly reduced.
- The guard bands and guard periods may be reduced.
- Co-existence is facilitated for services on neighbouring frequency bands.
- The requirement of very little additional hardware in order to implement the present
invention means that it is obtained for a relatively low cost.
- The possibility of MIMO communication in one direction and interference suppression
in another direction.
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The present invention will now be described more in detail with reference to the
appended drawings, where:
- Figure 1
- shows a simplified view of two base stations and a user terminal;
- Figure 2a
- shows a simplified top view of a first type of antenna arrangement which is arranged
to present an angularly varying polarization;
- Figure 2b
- shows a simplified front view of a first type of antenna arrangement which is arranged
to present an angularly varying polarization;
- Figure 3a
- shows a simplified top view of a second type of antenna arrangement which is arranged
to present an angularly varying polarization; and
- Figure 3b
- shows a simplified front view of a second type of antenna arrangement which is arranged
to present an angularly varying polarization.
DETAILED DESCRIPTION
[0031] With reference to Figure 1, a wireless communication system 1 comprises a first base
station 2 having an antenna arrangement 3 which in turn comprises a first single-polarized
antenna 4, and a second single-polarized antenna 5, the first base station having
a vertical extension that essentially runs along its longitudinal extension. Each
antenna 4, 5 is adapted for radiating an antenna radiation lobe pattern 6 having a
horizontal extension in an azimuth plane A, and a vertical extension in elevation
planes, perpendicular to the azimuth plane A for all azimuth directions.
[0032] The wireless communication system 1 further comprises a second base station 7, also
having an antenna arrangement 8 which in turn comprises a first single-polarized antenna
9, and a second single-polarized antenna 10. Each antenna 9, 10 is adapted for radiating
an antenna radiation lobe pattern (not shown) having a horizontal extension in an
azimuth plane A, and a vertical extension in elevation planes, perpendicular to the
azimuth plane A for all azimuth directions.
[0033] The first base station's first antenna 4 and second antenna 5 are arranged to transmit
signals in a first direction 11 from the first base station's antennas 4, 5 towards
the second base station 7 using a first polarization p1, which here is +45° relative
the azimuth plane A. The second base station's first antenna 9 and second antenna
10 are arranged to receive signals from said first direction 11, using said first
polarization p1 from its point of view. This means that the transmitted signals from
the first base station 2 appear essentially orthogonal to the second base station's
first and second antennas' 9, 10 receiving polarizations. In this way, the interference
from the first base station 2 to the second base station 7 is highly reduced.
[0034] A user terminal 12 which comprises a first antenna 13 and a second antenna 14 is
arranged for communication via the first base station 2.
[0035] According to the present invention, the first base station's second antenna 5 is
arranged to transmit signals in a second direction 15 from the first base station's
first antenna 4 towards the user terminal 12 using a second polarization p2, and furthermore,
the first base station's first antenna 4 is arranged to transmit signals in the second
direction 15 using a third polarization p3, where the second polarization p2 is essentially
orthogonal to the third polarization p3.
[0036] The second direction 15 may have any direction differing from the first direction
11. Normally, the second direction differs from the first direction 11 at least in
an elevation plane E, but may also have another azimuth direction than the first direction
11.
[0037] In this way, it is possible for the first base station 2 to communicate with the
user terminal 12 using two essentially orthogonal polarizations p2, p3, enabling MIMO
communication, while at the same time communicate using essentially one and the same
polarization p1 in directions where the communicated signals may constitute interference.
[0038] According to one alternative, the first polarization p1 and the third polarization
p3 are essentially identical.
[0039] Both antennas 4, 5 of the first base station 2 thus transmit signals that are orthogonal
in polarization towards other base stations 7 with the same antenna design and at
mainly the same elevation angle. The variable polarization is designed to change around
90° from the first direction 11 to the second direction 15, where all user terminals
12 connected to wireless communication area cells are located. An increased polarization
separation is achieved improving channel rank which increases the possibility to use
MIMO.
[0040] In order to achieve the above, at least the second antenna 5 has a polarization that
is different in different directions, the polarization being a function of transmission
direction. Only the second antenna 5 has a polarization that is different in different
directions in the case where the first polarization p1 and the third polarization
p3 are essentially identical.
[0041] With reference to Figure 2a and Figure 2b, in a first version of the second antenna
5, it is composed of a first element 5a and a second element 5b with a corresponding
first radiation pattern 16a and second radiation pattern 16b, the radiation patterns
16a, 16b being essentially similar. The first element 5a radiates with a first polarization
having a first polarization vector v
1 and the second element 5b radiates with a second polarization, having a second polarization
vector v
2 with an angle θ presented between their extensions. The first polarization vector
v
1 and the second polarization vector v
2 are orthogonal in this example, i.e. the angle θ = 90°, but this is not absolutely
necessary, some degree of parallelity can be accepted. The two antenna elements 5a,
5b are separated by a small distance d.
[0042] An incoming time-varying signal x(t) is divided into two signals x
1(t), x
2(t) to the two elements, where weights w1, w2 are added to the corresponding signals
x
1(t), x
2(t).
[0043] The net polarization vector for transmissions in a direction ϕ will be:

[0044] For simplicity, in this example w1=w2=1 and g1(ϕ) = g2(ϕ) = 1. Thus, the net polarization
vector is an angular-dependent linear combination of the two element polarizations:

[0045] With reference to Figure 3a and Figure 3b, in a second version of the second antenna
5, it is composed of a first element 5a' and a second element 5b' with a corresponding
first radiation pattern 17a and second radiation pattern 17b, the radiation patterns
17a, 17b being dissimilar. The first element 5a' radiates with a first polarization
having a first polarization vector v
1' and the second element 5b' radiates with a second polarization, having a second
polarization vector v
2' with an angle θ presented between their extensions. The elements 5a', 5b' preferably
have a common phase centre, although this is not required. The net polarization in
any given direction will be a result of a weighted sum of the first polarization vector
v
1' and the second polarization vector v
2',
[0046] An incoming time-varying signal x(t) is divided into two signals x
1(t), x
2(t) to the two elements, where weights w1, w2 are added to the corresponding signals
x
1(t), x
2(t). The weights w1, w2 are the antenna gains for the elements in that particular
direction. By shaping the radiation patterns of the two elements, it is possible to
control how the net polarization will behave.
[0047] According to the above, the net polarization vector for transmissions in a direction
ϕ is:

and, without loss of generality, setting d=0, w1=1, w2=1 gives

[0048] The present invention can be applied both downlink and uplink, both transmitting
and receiving polarization have the same polarization pattern. This limits the interference
between unsynchronized TDD base stations as described above. It can also be applied
on transmission, letting the receiving base station do normal interference cancellation.
Its interference cancellation possibility is improved by the fact that all interference
from the other base station have the same polarization.
[0049] The simplest application of the present invention is a 2x2 MIMO as exemplified in
Figure 1. One stream uses a fixed polarization of 45°, the other stream uses the same
45° in the horizontal direction (ϕ=0°) but with a twisted polarization towards mobiles
12 in own cell.
[0050] The arrangement is reciprocal, i.e. when the second base station 7 transmits signals,
using its first antenna 9 and second antenna 10, the first antenna 9 and second antenna
10 use essentially the same polarization towards the first base station 2, the polarization
being +45° relative the azimuth plane. This means that the transmitted signals from
the second base station 7 appear essentially orthogonal to the first base station's
first and second antennas' 9, 10 receiving polarizations. In this way, the interference
from the second station 7 to the first base station 2 is highly reduced.
[0051] If all base stations in a larger system, comprising a multitude of base stations,
are arranged in this manner, all base station-to-base station interference will be
highly reduced, while at the same time enabling MIMO communication with user terminals,
using essentially orthogonal polarizations.
[0052] There are a number of other straight forward applications:
- Twisting the polarizations of both transmitted streams, but in different directions,
to get 0° and 90° in the direction of the own cell (since these polarizations are
found to persist best).
- Apply it on higher order MIMO, twisting with different rotation as a function of ϕ
resulting in that each stream has a different polarization towards the mobile.
[0053] It is possible to use the same transmission polarization for improved transmit diversity
instead of MIMO.
[0054] The present invention is not limited to the embodiments above but may vary freely
within the scope of the appended claims.
[0055] For example, the first polarization need not be +45°, the essential feature is that
it has vertical and horizontal polarization components of equal amplitude, such as
±45° slant linear, circular, or some elliptic polarizations. The desired effect is
that, in the first direction, a signal transmitted from the first base station's first
and second antennas will have a polarization that is essentially orthogonal to the
polarization of the second base station's first and second antennas, and vice versa.
[0056] As discussed previously, the first polarization and the third polarization may or
may not be essentially equal. The first polarization may for example be +45°, while
the second polarization is 0° and the third polarization is +90°.
[0057] All antennas 4, 5; 9, 10; 13, 14 described may be of any suitable type, for example
wire antennas, patch antennas or dipole antennas, generally constituting antenna functions.
The antenna functions 4, 5; 9, 10; 13, 14 are either separate antennas, or a combined
dual polarized antenna.
[0058] The antenna functions 13, 14 according to the present invention as described above
may also be implemented on a user terminal 12.
[0059] Generally, the first direction 11 is essentially the direction from the antenna functions
4, 5; 9, 10 comprised in one base station 2, 7, towards opposite antenna functions
9, 10; 4, 5 comprised in other base stations 7, 2. The first direction 11 may also
be a direction from the antenna functions 4, 5; 9, 10 comprised in one base station
2, 7, towards opposite antenna functions comprised in other user terminals which are
positioned in, or at the border of, a neighbouring communication area cell.
[0060] The first base stations first and second antennas 4, 5 are preferably arranged to
transmit signals using the first polarization p1 for all directions lying in essentially
the same horizontal plane as the first direction 11, such that interference from the
first base station 2 to other, not shown, base stations also is reduced in the same
way.
[0061] However, it is conceivable that the polarization of at least the second antenna 5
uses the corresponding second/third polarization p2, p3 than the first polarization
p1 in another direction in essentially the same horizontal plane as the first direction
11.
[0062] Generally, the base station 2 is constituted by a node.
1. An antenna arrangement (3) for use in a wireless communication system (1), where the
arrangement (3) comprises at least two single-polarized antenna functions (4, 5),
each antenna function (4, 5) being adapted for radiating an antenna radiation lobe
pattern (6) having a horizontal extension in an azimuth plane (A), and a vertical
extension in an elevation plane (E), perpendicular to the azimuth plane (A), where
the antenna functions (4, 5) both have essentially a first polarization (p1) in a
first direction (11), characterized in that, in a second direction (15) separated from the first direction (11), the second antenna
function (5) has a second polarization (p2) and the first antenna function (4) has
a third polarization (p3), the second polarization (p2) and the third polarization
(p3) being essentially orthogonal to each other.
2. An antenna arrangement according to claim 1, characterized in that the third polarization (p3) is essentially equal to the first polarization (p1).
3. An antenna arrangement according to claim 1 or 2, characterized in that the second direction (15) is separated from the first direction (11) at least in
an elevation plane (E).
4. An antenna arrangement according to any one of the preceding claims, characterized in that the vertical components and horizontal polarization components of the first polarization
(p1) have essentially equal amplitude.
5. An antenna arrangement according to any one of the preceding claims, characterized in that the second direction (15) is intended for communication with a user terminal (12).
6. A node in a wireless communication system (1), the node comprising an antenna arrangement
(3), which in turn comprises at least two single-polarized antenna functions (4, 5),
each antenna function (4, 5) being adapted for radiating an antenna radiation lobe
pattern (6) having a horizontal extension in an azimuth plane (A), and a vertical
extension in an elevation plane (E), perpendicular to the azimuth plane (A), where
the antenna functions (4, 5) both have essentially a first polarization (p1) in a
first direction (11), characterized in that, in a second direction (15) separated from the first direction (11), one antenna
function (5) has a second polarization (p2) and another antenna function (4) has a
third polarization (p3), the second polarization (p2) and the third polarization (p3)
being essentially orthogonal to each other.
7. A node according to claim 6, characterized in that the third polarization (p3) is essentially equal to the first polarization (p1).
8. A node according to any one of the claims 6 or 7, characterized in that the vertical components and horizontal polarization components of the first polarization
(p1) have essentially equal amplitude.
9. A node according to any one of the claims 6-8, characterized in that the second direction (15) is intended for communication with a user terminal (12).
10. A node according to any one of the claims 6-9, characterized in that the communication in the second direction (15) comprises communication by means of
Multiple Input Multiple Output, MIMO.
11. A node according to any one of the claims 6-10, characterized in that it is constituted by a base station (2), which base station in turn comprises said
antenna functions (4, 5).
12. A node according to claim 11, characterized in that the wireless communication system (1) further comprises at least one further base
station (7) having corresponding antenna functions (9, 10), where the base stations
(2, 7) in the wireless communication system (1) are arranged for communication such
that all the antenna functions (4, 5; 9, 10) use essentially identical polarizations,
such that each one of two opposite antenna functions (4, 5; 9, 10) comprised in separate
base stations (2, 7) experience an essentially orthogonal polarization from the other
in the first direction (11), the first direction (11) essentially being the direction
from antenna functions (4, 5; 9, 10) comprised in one base station (2, 7), towards
opposite antenna functions (9, 10; 4, 5) comprised in other base stations (7, 2).
13. An antenna function according to any one of the previous claims, characterized in that the antenna function (5) has a first polarization (p1) and a second polarization
(p2) and is continuously variable, from the first polarization (p1) to the second
polarization (p2), between the first direction (11) and the second direction (15).
14. An antenna function according to claim 13, characterized in that each antenna function (5) with a continuously variable polarization comprises a first
element (5a) with a first polarization vector (v1) and a second element (5b) with a second polarization vector (v2), the polarization vectors (v1, v2) presenting an angle (θ) between them, where the elements (5a, 5b) radiate essentially
equal radiation patterns (16a, 16b), the elements (5a, 5b) being separated by a distance
(d).
15. An antenna function according to claim 14, characterized in that each antenna function (5) with a continuously variable polarization comprises a first
element (5a') with a first polarization vector (v1') and a second element (5b') with a second polarization vector (v2'), the polarization vectors (v1', v2') presenting an angle (θ) between them, where the elements (5a', 5b') radiate unequal
radiation patterns (17a, 17b).
1. Antennenanordnung (3) für die Verwendung in einem drahtlosen Kommunikationssystem
(1), wobei die Anordnung (3) wenigstens zwei einfach polarisierte Antennenfunktionen
(4, 5) umfasst, wobei jede Antennenfunktion (4, 5) ausgebildet ist, um ein Antennenstrahlungskeulenmuster
(6) mit einer horizontalen Erstreckung in einer Azimutebene (A) und einer vertikalen
Erstreckung in einer Elevationsebene (E) senkrecht zu der Azimutebene (A) auszustrahlen,
wobei die Antennenfunktionen (4, 5) beide im Wesentlichen eine erste Polarisation
(p1) in einer ersten Richtung (11) aufweisen, dadurch gekennzeichnet, dass in einer zweiten Richtung (15), die von der ersten Richtung (11) getrennt ist, die
zweite Antennenfunktion (5) eine zweite Polarisation (p2) aufweist und die erste Antennenfunktion
(4) eine dritte Polarisation (p3) aufweist, wobei die zweite Polarisation (p2) und
die dritte Polarisation (p3) im Wesentlichen orthogonal zueinander sind.
2. Antennenanordnung nach Anspruch 1, dadurch gekennzeichnet, dass die dritte Polarisation (p3) im Wesentlichen gleich der ersten Polarisation (p1)
ist.
3. Antennenanordnung nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass die zweite Richtung (15) von der ersten Richtung (11) wenigstens in einer Elevationsebene
(E) getrennt ist.
4. Antennenanordnung nach einem der vorstehenden Ansprüche, dadurch gekennzeichnet, dass die vertikalen Komponenten und die horizontalen Polarisationskomponenten der ersten
Polarisation (p1) im Wesentlichen die gleiche Amplitude aufweisen.
5. Antennenanordnung nach einem der vorstehenden Ansprüche, dadurch gekennzeichnet, dass die zweite Richtung (15) für eine Kommunikation mit einem Benutzerendgerät (12) vorgesehen
ist.
6. Knoten in einem drahtlosen Kommunikationssystem (1), wobei der Knoten eine Antennenanordnung
(3) umfasst, die wiederum wenigstens zwei einfach polarisierte Antennenfunktionen
(4, 5) umfasst, wobei jede Antennenfunktion (4, 5) ausgebildet ist, um ein Antennenstrahlungskeulenmuster
(6) mit einer horizontalen Erstreckung in einer Azimutebene (A) und einer vertikalen
Erstreckung in einer Elevationsebene (E) senkrecht zu der Azimutebene (A) auszustrahlen,
wobei die Antennenfunktionen (4, 5) beide im Wesentlichen eine erste Polarisation
(p1) in einer ersten Richtung (11) aufweisen, dadurch gekennzeichnet, dass in einer zweiten Richtung (15), die von der ersten Richtung (11) getrennt ist, eine
Antennenfunktion (5) eine zweite Polarisation (p2) aufweist und eine andere Antennenfunktion
(4) eine dritte Polarisation (p3) aufweist, wobei die zweite Polarisation (p2) und
die dritte Polarisation (p3) im Wesentlichen orthogonal zueinander sind.
7. Knoten nach Anspruch 6, dadurch gekennzeichnet, dass die dritte Polarisation (p3) im Wesentlichen gleich der ersten Polarisation (p1)
ist.
8. Knoten nach Anspruch 6 oder 7, dadurch gekennzeichnet, dass die vertikalen Komponenten und die horizontalen Polarisationskomponenten der ersten
Polarisation (p1) im Wesentlichen die gleiche Amplitude aufweisen.
9. Knoten nach einem der Ansprüche 6 bis 8, dadurch gekennzeichnet, dass die zweite Richtung (15) für eine Kommunikation mit einem Benutzerendgerät (12) vorgesehen
ist.
10. Knoten nach einem der Ansprüche 6 bis 9, dadurch gekennzeichnet, dass die Kommunikation in der zweiten Richtung (15) eine MIMO (Multiple Input Multiple
Output)-Kommunikation umfasst.
11. Knoten nach einem der Ansprüche 6 bis 10, dadurch gekennzeichnet, dass dieser durch eine Basisstation (2) gebildet wird, wobei die Basisstation wiederum
die Antennenfunktionen (4, 5) umfasst.
12. Knoten nach Anspruch 11, dadurch gekennzeichnet, dass das drahtlose Kommunikationssystem (1) weiterhin wenigstens eine weitere Basisstation
(7) umfasst, die entsprechende Antennenfunktionen (9, 10) aufweist, wobei die Basisstationen
(2, 7) in dem drahtlosen Kommunikationssystem (1) derart für eine Kommunikation angeordnet
sind, dass alle Antennenfunktionen (4, 5; 9, 10) im Wesentlichen identische Polarisationen
verwenden, sodass jede der zwei entgegengesetzten Antennenfunktionen (4, 5; 9, 10)
in separaten Basisstationen (2, 7) eine im Wesentlichen orthogonale Polarisation von
der anderen in der ersten Richtung (11) erfährt, wobei die erste Richtung (11) im
Wesentlichen die Richtung von Antennenfunktionen (4, 5; 9, 10) in einer Basisstation
(2, 7) zu entgegengesetzten Antennenfunktionen (9, 10; 4, 5) in anderen Basisstationen
(7, 2) ist.
13. Antennenfunktion nach einem der vorstehenden Ansprüche, dadurch gekennzeichnet, dass die Antennenfunktion (5) eine erste Polarisation (p1) und eine zweite Polarisation
(p2) aufweist und kontinuierlich von der ersten Polarisation (p1) zu der zweiten Polarisation
(p2) zwischen der ersten Richtung (11) und der zweiten Richtung (15) variabel ist.
14. Antennenfunktion nach Anspruch 13, dadurch gekennzeichnet, dass jede Antennenfunktion (5) mit einer kontinuierlich variablen Polarisation ein erstes
Element (5a) mit einem ersten Polarisationsvektor (v1) und ein zweites Element (5b) mit einem zweiten Polarisationsvektor (v2) umfasst, wobei die Polarisationsvektoren (v1, v2) dazwischen einen Winkel (θ) aufweisen, wobei die Elemente (5a, 5b) im Wesentlichen
gleiche Strahlungsmuster (16a, 16b) ausstrahlen und wobei die Elemente (5a, 5b) durch
eine Distanz (d) voneinander getrennt sind.
15. Antennenfunktion nach Anspruch 14, dadurch gekennzeichnet, dass jede Antennenfunktion (5) mit einer kontinuierlich variablen Polarisation ein erstes
Element (5a') mit einem ersten Polarisationsvektor (v1') und ein zweites Element (5b') mit einem zweiten Polarisationsvektor (v2') umfasst, wobei die Polarisationsvektoren (v1', v2') dazwischen einen Winkel (θ) aufweisen und wobei die Elemente (5a', 5b') ungleiche
Strahlungsmuster (17a, 17b) ausstrahlen.
1. Agencement d'antennes (3) destiné à être utilisé dans un système de communication
sans fil (1), où l'agencement (3) comprend au moins deux fonctions d'antenne à polarisation
simple (4, 5), chaque fonction d'antenne (4, 5) étant adaptée à rayonner un diagramme
de lobes de rayonnement d'antenne (6) ayant une extension horizontale dans un plan
azimutal (A) et une extension verticale dans un plan d'élévation (E), perpendiculaire
au plan azimutal (A), où les fonctions d'antenne (4, 5) ont toutes deux sensiblement
une première polarisation (p1) dans une première direction (11), caractérisé en ce que, dans une seconde direction (15) distincte de la première direction (11), la seconde
fonction d'antenne (5) possède une deuxième polarisation (p2) et la première fonction
d'antenne (4) possède une troisième polarisation (p3), la deuxième polarisation (p2)
et la troisième polarisation (p3) étant sensiblement orthogonales l'une par rapport
à l'autre.
2. Agencement d'antennes selon la revendication 1, caractérisé en ce que la troisième polarisation (p3) est sensiblement identique à la première polarisation
(p1).
3. Agencement d'antennes selon la revendication 1 ou 2, caractérisé en ce que la seconde direction (15) est séparée de la première direction (11) au moins dans
un plan d'élévation (E).
4. Agencement d'antennes selon l'une quelconque des revendications précédentes, caractérisé en ce que les composantes verticales et les composantes de polarisation horizontale de la première
polarisation (p1) ont des amplitudes sensiblement égales.
5. Agencement d'antennes selon l'une quelconque des revendications précédentes, caractérisé en ce que la seconde direction (15) est destinée à une communication avec un terminal d'utilisateur
(12).
6. Noeud dans un système de communication sans fil (1) le noeud comprenant un agencement
d'antennes (3) qui comprend lui-même au moins deux fonctions d'antenne à polarisation
simple (4, 5), chaque fonction d'antenne (4, 5) étant adaptée à rayonner un diagramme
de lobes de rayonnement d'antenne (6) ayant une extension horizontale dans un plan
azimutal (A) et une extension verticale dans un plan d'élévation (E), perpendiculaire
au plan azimutal (A), où les fonctions d'antenne (4, 5) ont toutes deux sensiblement
une première polarisation (p1) dans une première direction (11), caractérisé en ce que, dans une seconde direction (15) distincte de la première direction (11), une fonction
d'antenne (5) possède une deuxième polarisation (p2) et une autre fonction d'antenne
(4) possède une troisième polarisation (p3), la deuxième polarisation (p2) et la troisième
polarisation (p3) étant sensiblement orthogonales l'une par rapport à l'autre.
7. Noeud selon la revendication 6, caractérisé en ce que la troisième polarisation (p3) est sensiblement identique à la première polarisation
(p1).
8. Noeud selon l'une quelconque des revendications 6 ou 7, caractérisé en ce que les composantes verticales et les composantes de polarisation horizontale de la première
polarisation (p1) ont des amplitudes sensiblement égales.
9. Noeud selon l'une quelconque des revendications 6 à 8, caractérisé en ce que la seconde direction (15) est destinée à une communication avec un terminal d'utilisateur
(12).
10. Noeud selon l'une quelconque des revendications 6 à 9, caractérisé en ce que la communication dans la seconde direction (15) comprend une communication au moyen
d'une entrée multiple sortie multiple, MIMO.
11. Noeud selon l'une quelconque des revendications 6 à 10, caractérisé en ce qu'il est constitué d'une station de base (2), station de base comprenant elle-même lesdites
fonctions d'antenne (4, 5).
12. Noeud selon la revendication 11, caractérisé en ce que le système de communication sans fil (1) comprend en outre au moins une autre station
de base (7) ayant des fonctions d'antenne correspondantes (9, 10), où les stations
de base (2, 7) dans le système de communication sans fil (1) sont agencées pour une
communication telle que toutes les fonctions d'antenne (4, 5; 9, 10) utilisent des
polarisations sensiblement identiques, de sorte que chacune de deux fonctions d'antenne
opposées (4, 5; 9, 10) comprises dans des stations de base séparées (2, 7) fait l'objet
d'une polarisation sensiblement orthogonale par rapport à l'autre dans la première
direction (11), la première direction (11) étant sensiblement la direction allant
des fonctions d'antenne (4, 5; 9, 10) comprises dans une station de base (2, 7) vers
des fonctions d'antenne opposées (9, 10; 4, 5) comprises dans les autres stations
de base (7, 2).
13. Fonction d'antenne selon l'une quelconque des revendications précédentes, caractérisé en ce que la fonction d'antenne (5) possède une première polarisation (p1) et une deuxième
polarisation (p2) et est variable en continu de la première polarisation (p1) à la
deuxième polarisation (p2) entre la première direction (11) et la seconde direction
(15).
14. Fonction d'antenne selon la revendication 13, caractérisée en ce que chaque fonction d'antenne (5) avec une polarisation variable en continu comprend
un premier élément (5a) avec un premier vecteur de polarisation (v1) et un second élément (5b) avec un second vecteur de polarisation (v2), les vecteurs de polarisation (v1, v2) présentant un angle (θ) entre eux, où les éléments (5a, 5b) rayonnent des diagrammes
de rayonnement sensiblement identiques (16a, 16b), les éléments (5a, 5b) étant séparés
d'une certaine distance (d).
15. Fonction d'antenne selon la revendication 14, caractérisée en ce que chaque fonction d'antenne (5) avec une polarisation variable en continu comprend
un premier élément (5a') avec un premier vecteur de polarisation (v1') et un second élément (5b') avec un second vecteur de polarisation (v2'), les vecteurs de polarisation (v1', v2') présentant un angle (θ) entre eux, où les éléments (5a', 5b') rayonnent des diagrammes
de rayonnement inégaux (17a, 17b).